Hard Root of Complex Number (1 Viewer)

mezza333 · Nov 24, 2011

Hi i was wondering if someone could find the sqaure roots of (12-6i)
I usually use Terry Lee's quick method, but this is a bit harder.
Thanks for the help

Shadowdude · Nov 24, 2011

And Terry Lee's method is...?

mezza333 · Nov 24, 2011

It's in his book on page 31. He equates the terms really quickly but it generally works for roots that are fairly clean. i think this one is a little more complex :O have any idea on the answer?

Sup3rDry · Nov 24, 2011

Hmm idk his method is weird. Do you know how to do it the algebraic way?

slyhunter · Nov 24, 2011

Which method? He has 2.

mezza333 · Nov 24, 2011

yea i can do it algebraically but i just want a worked solution to see if it's right

mezza333 · Nov 24, 2011

slyhunter said:
Which method? He has 2.

Method 2 but i dont think that works for this question

slyhunter · Nov 24, 2011

Then use Method 1? I've always used that method, never 2.

mezza333 · Nov 24, 2011

can u post a latex solution to it please?

Sup3rDry · Nov 24, 2011

He factorises it somehow :O

slyhunter · Nov 24, 2011

I'm getting a very complicated solution, can you post what you've done seeing as how you've done it algebraically?

tohriffic · Nov 24, 2011

Derp wrong question. Soz bro.

slyhunter · Nov 24, 2011

12-6i isn't as easy it seems

tohriffic · Nov 24, 2011

slyhunter said:
12-6i isn't as easy it seems

It's too complex!

mezza333 · Nov 24, 2011

slyhunter said:
I'm getting a very complicated solution,

I'm getting a really complicated answer as well. i think it will just be a messy result

slyhunter · Nov 25, 2011

Will post my solution soon

slyhunter · Nov 25, 2011

Let $a+ib = \sqrt{12-6i}$ where $a,b$ are real.

$a^2-b^2+2abi = 12-6i$ upon squaring both sides.

Equate real parts, $a^2-b^2=12...(1)$

Equate imaginary parts, $2ab=-6...(2)$

From $(2), b=-\frac{3}{a}$

Substituting that into $(1)$

$a^2-\frac{9}{a^2}=12$

$a^4-12a^2-9=0$

$a^2=\frac{12\pm \sqrt{(-12)^2-4\times 1\times -9}}{2\times 1}$

$a^2=6\pm 3\sqrt{5}$

But $a>0$ so, $a^2=6+3\sqrt{5}$

$a=\pm \sqrt{6+3\sqrt{5}}$

$b=-\frac{3}{\pm \sqrt{6+3\sqrt{5}}}$

The square roots of $12-6i$ are $\pm \left ( \sqrt{6+3\sqrt{5}}-\frac{3}{\sqrt{6+3\sqrt{5}}}i \right )$

marksgm · Nov 25, 2011

mezza333 · Nov 26, 2011

Thanks mate you're a boss

lolcakes52 · Dec 7, 2011

Isn't it just plus or minus the square root of the modulus times cis(theta) where theta is half the argument? That seems like a much more simplistic way considering the argument is so clean.

Hard Root of Complex Number (1 Viewer)

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